Sensorimotor integration within the primary motor cortex by selective nerve fascicle stimulation.

The Journal of Physiology Pub Date : 2022-03-01 Epub Date: 2022-01-12 DOI:10.1113/JP282259
Federico Ranieri, Giovanni Pellegrino, Anna Lisa Ciancio, Gabriella Musumeci, Emiliano Noce, Angelo Insola, Lorenzo Alirio Diaz Balzani, Vincenzo Di Lazzaro, Giovanni Di Pino
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Abstract

The integration of sensory inputs in the motor cortex is crucial for dexterous movement. We recently demonstrated that a closed-loop control based on the feedback provided through intraneural multichannel electrodes implanted in the median and ulnar nerves of a participant with upper limb amputation improved manipulation skills and increased prosthesis embodiment. Here we assessed, in the same participant, whether and how selective intraneural sensory stimulation also elicits a measurable cortical activation and affects sensorimotor cortical circuits. After estimating the activation of the primary somatosensory cortex evoked by intraneural stimulation, sensorimotor integration was investigated by testing the inhibition of primary motor cortex (M1) output to transcranial magnetic stimulation, after both intraneural and perineural stimulation. Selective sensory intraneural stimulation evoked a low-amplitude, 16 ms-latency, parietal response in the same area of the earliest component evoked by whole-nerve stimulation, compatible with fast-conducting afferent fibre activation. For the first time, we show that the same intraneural stimulation was also capable of decreasing M1 output, at the same time range of the short-latency afferent inhibition effect of whole-nerve superficial stimulation. The inhibition generated by the stimulation of channels activating only sensory fibres was stronger than that due to intraneural or perineural stimulation of channels activating mixed fibres. We demonstrate in a human subject that the cortical sensorimotor integration inhibiting M1 output previously described after the experimental whole-nerve stimulation is present also with a more ecological selective sensory fibre stimulation. KEY POINTS: Cortical integration of sensory inputs is crucial for dexterous movement. Short-latency somatosensory afferent inhibition of motor cortical output is typically produced by peripheral whole-nerve stimulation. We exploited intraneural multichannel electrodes used to provide sensory feedback for prosthesis control to assess whether and how selective intraneural sensory stimulation affects sensorimotor cortical circuits in humans. Activation of the primary somatosensory cortex (S1) was explored by recording scalp somatosensory evoked potentials. Sensorimotor integration was tested by measuring the inhibitory effect of the afferent stimulation on the output of the primary motor cortex (M1) generated by transcranial magnetic stimulation. We demonstrate in humans that selective intraneural sensory stimulation elicits a measurable activation of S1 and that it inhibits the output of M1 at the same time range of whole-nerve superficial stimulation.

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选择性神经束刺激初级运动皮质的感觉运动整合。
运动皮层中感觉输入的整合对于灵巧的运动至关重要。我们最近证明,通过在上肢截肢患者的正中神经和尺神经植入神经内多通道电极,基于反馈的闭环控制提高了操作技能,增加了假体的实施。在这里,我们评估了在同一参与者中,选择性神经内感觉刺激是否以及如何引起可测量的皮层激活并影响感觉运动皮层回路。在估计了神经内刺激引起的初级体感觉皮层的激活后,通过测试初级运动皮层(M1)输出对经颅磁刺激的抑制来研究感觉运动整合,在神经内和神经周围刺激后。选择性感觉神经内刺激在全神经刺激诱发的最早成分的相同区域诱发了低幅度,16 ms潜伏期的顶叶反应,与快速传导传入纤维激活相一致。我们首次发现,同样的神经内刺激也能够在全神经表面刺激的短潜伏期传入抑制作用的同一时间范围内降低M1输出。仅激活感觉纤维的通道刺激所产生的抑制强于激活混合纤维的通道的神经内或神经周刺激。我们在一个人类实验对象中证明,在实验全神经刺激后,皮层感觉运动整合抑制M1输出也存在于更生态的选择性感觉纤维刺激中。重点:感觉输入的皮质整合对灵巧运动至关重要。运动皮质输出的短潜伏期体感传入抑制通常是由周围全神经刺激产生的。我们利用神经内多通道电极为假肢控制提供感觉反馈,以评估选择性神经内感觉刺激是否以及如何影响人类的感觉运动皮质回路。通过记录头皮体感诱发电位,探讨初级体感皮层(S1)的激活。通过测量传入刺激对经颅磁刺激产生的初级运动皮层(M1)输出的抑制作用来测试感觉运动整合。我们在人类中证明,选择性的神经内感觉刺激引起可测量的S1激活,并在全神经表面刺激的同一时间范围内抑制M1的输出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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